Exploring photoexcited spin states for fullerene-derivatives based organic bulk heterojunction solar cells using magneto-photocurrent

Author:

Hu Jiaji123ORCID,Kan Lixuan123,Xie Yongchao123ORCID,Zhu Xixiang123ORCID,Yu Haomiao123ORCID,Li Jinpeng123ORCID,Zhang Fujun123ORCID,Duan Wubiao123ORCID,Wang Kai123ORCID

Affiliation:

1. Tangshan Research Institute of Beijing Jiaotong University 1 , Tangshan 063000, China

2. Key Laboratory of Luminescence and Optical Information, Ministry of Education, School of Physical Science and Engineering, Beijing Jiaotong University 2 , Beijing 100044, China

3. Institute of Optoelectronics Technology, Beijing Jiaotong University 3 , Beijing 100044, China

Abstract

Fullerene-derivatives based bulk heterojunctions hold an exceptionally important role on the roadmap of highly efficient organic solar cells (OSCs). In recent years, the utilization of the non-fused ring acceptors based OSCs has further improved photovoltaic power conversion efficiencies. Among these, one of the fundamental issues is to explore and to understand the spin-related polaron dissociation at charge transfer states because they act as the central unit for the photovoltaic action. It is also eagerly important to quantify some internal fields, such as hyperfine fields and the spin–orbit coupling. The aim of the work is to develop a method for unraveling the photoexcited spin states, particularly for the fullerene-derivative based OSC. Furthermore, it helps to elucidate a long-standing issue regarding the relatively high production of photocurrent for the P3HT:PC71BM system, which is indeed contrary to its counterpart the P3HT:PC61BM system. Their corresponding Jablonski diagrams have been determined in order to understand interior spin dynamics. The method of the study offers an alternative route for an understanding of device performance from the spin-related aspect.

Funder

Tangshan Science and Technology Bureau

Fundamental Research Funds of Central Universities

National Natural Science Foundation of China

Publisher

AIP Publishing

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